自适应无监督语音控制系统的演化

T. Herbig, F. Gerl, W. Minker
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引用次数: 3

摘要

本文提出了一种由语音识别、说话人识别和说话人自适应组成的自学习语音控制系统。我们的目标是在不需要演讲者特定训练的情况下,为大约五个重复出现的演讲者自动个性化语音控制设备。提出了一种基于统一语音和说话人模型的未知说话人检测方法。新用户以一种无监督的方式检测,仅基于少数话语。在没有用户任何额外干预的情况下初始化新的说话人配置文件。通过跟踪说话人在连续话语中的身份,每个轮廓都被不断地调整,以增强未来的语音识别和说话人识别。在speech数据库的一个子集上进行了该系统的演化实验。结果表明,在长期运行中,系统产生的自适应曲线使语音识别率的提高仅略低于监督或闭集系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evolution of an adaptive unsupervised speech controlled system
In this paper we present a self-learning speech controlled system comprising speech recognition, speaker identification and speaker adaptation. Our goal is the automatic personalization of speech controlled devices for some five recurring speakers without the requirement of a speaker specific training. We present a novel approach to detect unknown speakers based on a unified speech and speaker model. New users are detected in an unsupervised manner based on only a few utterances. New speaker profiles are initialized without any additional intervention of the user. Each profile is continuously adapted by tracking the speaker identity on successive utterances to enhance future speech recognition and speaker identification. Experiments on the evolution of such a system were carried out on a subset of the SPEECON database. The results show that in the long run the system produces adaptation profiles which give improvements in speech recognition rate only slightly lower than supervised or closed-set systems.
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